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山东大学学报 (医学版) ›› 2026, Vol. 64 ›› Issue (7): 100-117.doi: 10.6040/j.issn.1671-7554.0.2025.1132

• 公共卫生与预防医学 • 上一篇    下一篇

lncNEAT1通过ceRNA网络调控细胞氧化应激损伤的机制与研究进展

张翰之1,陈雯1,梁启惠1,丁胜勇1,2,吴海萃3   

  1. 1. 山东中医药大学第一临床医学院, 山东 济南 250014;2.山东中医药大学附属医院药学部, 山东 济南 250011;3.山东中医药大学附属医院生殖与遗传科, 山东 济南 250011
  • 出版日期:2026-07-10 发布日期:2026-07-21
  • 通讯作者: 吴海萃. E-mail:wuhaicui@sdutcm.edu.cn丁胜勇. E-mail:dsy200501@126.com
  • 基金资助:
    国家自然科学基金面上项目(82274573);山东省自然科学基金(ZR2021MH255,2023QE331);山东省泰山学者工程项目(tsqn202103182)

Research progress on the mechanism of lncNEAT1 in regulating cellular oxidative stress via the ceRNA network

ZHANG Hanzhi1, CHEN Wen1, LIANG Qihui1, DING Shengyong1,2, WU Haicui3   

  1. 1. First Clinical Medical College, Shandong University of Traditional Chinese Medicine, Jinan 250014, Shandong, China;
    2. Department of Pharmacy, Affiliated Hospital of Shandong University of Traditional Chinese Medicine, Jinan 250011, Shandong, China;
    3. Department of Reproduction and Genetics, Affiliated Hospital of Shandong University of Traditional Chinese Medicine, Jinan 250011, Shandong, China
  • Online:2026-07-10 Published:2026-07-21

摘要: 细胞氧化应激深度参与调控细胞增殖、炎症反应及程序性死亡(如凋亡、铁死亡、自噬)等关键病理生理过程。长链非编码RNA核旁斑组装转录本1(nuclear paraspeckle assembly transcript 1, lncNEAT1)是细胞应激反应的关键调控因子,其表达受氧化应激诱导,同时又通过竞争性内源性RNA(competitive endogenous RNA, ceRNA)等分子机制反馈调控氧化应激水平,二者间的双向调控关系构成疾病发生发展的关键环节。lncNEAT1在调控氧化还原稳态过程中具有双重效应,呈现出取决于细胞类型和病理环境的加剧或改善效应。本文总结了氧化应激调控lncNEAT1表达,详细阐述了lncNEAT1通过ceRNA网络吸附微小RNA(microRNA, miRNA),进而调控活性氧(reactive oxygen species, ROS)生成、影响关键转录因子[如核因子E2相关因子2(nuclear factor erythroid 2-related factor 2, Nrf2)、核因子κB(nuclear factor-κB, NF-κB)、信号转导和转录激活因子-3(signal transducer and activator of transcription 3, STAT3)]活性及干预谷胱甘肽(glutathion, GSH)合成等通路,促进或改善氧化应激与细胞氧化损伤的机制与研究进展。深入理解lncNEAT1与氧化应激之间的调控网络,有望为心脑血管、神经、生殖系统等相关疾病的发病机制与靶向治疗提供新策略。

关键词: 核旁斑组装转录本1, 氧化应激, 竞争性内源性RNA, 活性氧, 核因子E2相关因子2

Abstract: Cellular oxidative stress plays critical roles in regulating key pathophysiological processes, including cell proliferation, inflammatory responses, and programmed cell death(e.g., apoptosis, ferroptosis, and autophagy). Recent studies have revealed that the long non-coding RNA nuclear paraspeckle assembly transcript 1(lncNEAT1)serves a pivotal function in cellular stress responses. The expression of lncNEAT1 is induced under oxidative stress; in turn, it modulates oxidative stress levels via molecular mechanisms such as the competitive endogenous RNA(ceRNA)pathway. This bidirectional regulatory interplay constitutes a pivotal link in disease development and progression. LncNEAT1 exerts a dual role in regulating redox homeostasis, either exacerbating or alleviating effects depending on the cell type and pathological context. This review outlines how oxidative stress regulates lncNEAT1 expression and details the mechanisms by which lncNEAT1 functions as a ceRNA to sponge microRNA(miRNA), thereby modulating oxidative stress and cellular damage. These mechanisms include regulating reactive oxygen species(ROS)production, modulating the activity of key transcription factors(e.g., Nrf2, NF-κB, STAT3), and interfering with glutathione(GSH)synthesis. A deeper insight into the regulatory network between lncNEAT1 and oxidative stress is expected to provide novel strategies for elucidating pathogenesis, identifying diagnostic biomarkers, and developing targeted therapies for oxidative stress-related diseases affecting the cardiovascular, cerebrovascular, nervous, and reproductive systems.

Key words: lncNEAT1, Oxidative stress, Competitive endogenous RNA, Reactive oxygen species, Nuclear factor erythroid 2-related factor 2

中图分类号: 

  • R329.2
[1] Sies H. Oxidative stress: a concept in redox biology and medicine[J]. Redox Biol, 2015, 4: 180-183. DOI:10.1016/j.redox.2015.01.002
[2] Lushchak V I. Free radicals, reactive oxygen species, oxidative stress and its classification[J]. Chem Biol Interact, 2014, 224: 164-175. DOI:10.1016/j.cbi.2014.10.016
[3] Graille M, Wild P, Sauvain J J, et al. Urinary 8-OHdG as a biomarker for oxidative stress: a systematic literature review and meta-analysis[J]. Int J Mol Sci, 2020, 21(11): 3743. DOI:10.3390/ijms21113743
[4] Luo S Y, Liu C, Ding J, et al. Scavenging reactive oxygen species is a potential strategy to protect Larimichthys crocea against environmental hypoxia by mitigating oxidative stress[J]. Zool Res, 2021, 42(5): 592-605.
[5] Bridges M C, Daulagala A C, Kourtidis A. LNCcation: lncRNA localization and function[J]. J Cell Biol, 2021, 220(2): e202009045. DOI:10.1083/jcb.202009045
[6] Banerjee B, Mukherjee S. Editorial: reviews in non-coding RNA: 2023[J]. Front Genet, 2024, 15: 1437522. DOI:10.3389/fgene.2024.1437522
[7] Wu W J, Gao C H, Chen L P, et al. Comprehensive analysis of competitive endogenous RNAs networks reveals potential prognostic biomarkers associated with epithelial ovarian cancer[J]. Oncol Lett, 2021, 22(6): 843. DOI:10.3892/ol.2021.13104
[8] El-Ashmawy N E, Khedr E G, Darwish R T, et al. Competing endogenous RNAs network and therapeutic implications: new horizons in disease research[J]. Biochim Biophys Acta Gene Regul Mech, 2025, 1868(1): 195073. DOI:10.1016/j.bbagrm.2024.195073
[9] Salmena L, Poliseno L, Tay Y, et al. A CeRNA hypothesis: the Rosetta Stone of a hidden RNA language?[J]. Cell, 2011, 146(3): 353-358.
[10] Wang Y, Chen L L. Organization and function of paraspeckles[J]. Essays Biochem, 2020, 64(6): 875-882.
[11] Zhang R X, Zhang Z X, Zhao X Y, et al. Mechanism of action of lncRNA-NEAT1 in immune diseases[J]. Front Genet, 2025, 16: 1501115. DOI:10.3389/fgene.2025.1501115
[12] Yamazaki T, Souquere S, Chujo T, et al. Functional domains of NEAT1 architectural lncRNA induce paraspeckle assembly through phase separation[J]. Mol Cell, 2018, 70(6): 1038-1053.
[13] Wang C, Duan Y J, Duan G, et al. Stress induces dynamic, cytotoxicity-antagonizing TDP-43 nuclear bodies via paraspeckle LncRNA NEAT1-mediated liquid-liquid phase separation[J]. Mol Cell, 2020, 79(3): 443-458.
[14] Li K, Wang Z Q. lncRNA NEAT1: key player in neurodegenerative diseases[J]. Ageing Res Rev, 2023, 86: 101878. DOI:10.1016/j.arr.2023.101878
[15] Taiana E, Bandini C, Favasuli V K, et al. Activation of long non-coding RNA NEAT1 leads to survival advantage of multiple myeloma cells by supporting a positive regulatory loop with DNA repair proteins[J]. Haematologica, 2023, 108(1): 219-233.
[16] Zhao M, Liu S Y, Wang Y Z, et al. The mitochondria-paraspeckle axis regulates the survival of transplanted stem cells under oxidative stress conditions[J]. Theranostics, 2024, 14(4): 1517-1533.
[17] 牛帅, 吴学君. 铁死亡在腹主动脉瘤中的研究进展[J]. 山东大学学报(医学版), 2024, 62(9): 74-79. Niu Shuai, Wu Xuejun. Research progress of ferroptosis in abdominal aortic aneurysm[J]. Journal of Shandong University(Health Science), 2024, 62(9): 74-79.
[18] Zhou F S, Zheng Z, Zha Z B, et al. Nuclear paraspeckle assembly transcript 1 enhances hydrogen peroxide-induced human vascular smooth muscle cell injury by regulating miR-30d-5p/a disintegrin and metalloprotease 10[J]. Circ J, 2022, 86(6): 1007-1018.
[19] Fang X X, Ardehali H, Min J X, et al. The molecular and metabolic landscape of iron and ferroptosis in cardiovascular disease[J]. Nat Rev Cardiol, 2023, 20(1): 7-23.
[20] Wei Q, Zhou H Y, Shi X D, et al. Long noncoding RNA NEAT1 promotes myocardiocyte apoptosis and suppresses proliferation through regulation of miR-129-5p[J]. J Cardiovasc Pharmacol, 2019, 74(6): 535-541.
[21] Yu Q T, Li Y X, Zhang N, et al. Silencing of lncRNA NEAT1 alleviates acute myocardial infarction by suppressing miR-450-5p/ACSL4-mediated ferroptosis[J]. Exp Cell Res, 2024, 442(2): 114217. DOI:10.1016/j.yexcr.2024.114217
[22] Guo X N, Li C Y, Wang Y B, et al. Long non-coding RNA nuclear paraspeckle assembly transcript 1 down-regulation protects lens epithelial cells from oxidative stress-induced apoptosis by regulating the microRNA-124-3p/death-associated protein kinase 1 axis in age-related cataract[J]. Int Ophthalmol, 2023, 43(9): 3413-3424.
[23] Zhang M, Wang X T, Yao J, et al. Long non-coding RNA NEAT1 inhibits oxidative stress-induced vascular endothelial cell injury by activating the miR-181d-5p/CDKN3 axis[J]. Artif Cells Nanomed Biotechnol, 2019, 47(1): 3129-3137.
[24] Zhang X, Guan M X, Jiang Q H, et al. NEAT1 knockdown suppresses endothelial cell proliferation and induces apoptosis by regulating miR-638/AKT/mTOR signaling in atherosclerosis[J]. Oncol Rep, 2020, 44(1): 115-125.
[25] Guo J T, Wang L, Yu H B. Knockdown of NEAT1 mi-tigates ox-LDL-induced injury in human umbilical vein endothelial cells via miR-30c-5p/TCF7 axis[J]. Eur Rev Med Pharmacol Sci, 2020, 24(18): 9633-9644.
[26] 赵智博, 满振涛, 李伟. 胆固醇代谢在骨关节炎疾病中的作用及研究进展[J]. 山东大学学报(医学版), 2024, 62(2): 1-9. Zhao Zhibo, Man Zhentao, Li Wei. Role of cholesterol metabolism in osteoarthritis: a review of research progresses[J]. Journal of Shandong University(Health Science), 2024, 62(2): 1-9.
[27] Wang L, Xia J W, Ke Z P, et al. Blockade of NEAT1 represses inflammation response and lipid uptake via modulating miR-342-3p in human macrophages THP-1 cells[J]. J Cell Physiol, 2019, 234(4): 5319-5326.
[28] Wu X, Fan D Y, Chen B. LncRNA NEAT1 accelerates the proliferation, oxidative stress, inflammation, and fibrosis and suppresses the apoptosis through the miR-423-5p/GLIPR2 axis in diabetic nephropathy[J]. J Cardiovasc Pharmacol, 2022, 79(3): 342-354.
[29] Ghosh S, Mukhopadhyay P, Banerjee M, et al. Long noncoding RNAs as predictive markers for the early detection of diabetic neuropathy in type 1 diabetes patients: a cohort study from a government hospital in West Bengal, India[J]. Endocrine, 2025, 89(3): 745-764.
[30] Wang Z Q, Li K, Huang W R. Long non-coding RNA NEAT1-centric gene regulation[J]. Cell Mol Life Sci, 2020, 77(19): 3769-3779.
[31] Fan T, Zhu M C, Muhammad S, et al. H3K4me3-related lncRNAs signature and comprehensive analysis of H3K4me3 regulating tumor immunity in lung adenocarcinoma[J]. Respir Res, 2023, 24(1): 122. DOI:10.1186/s12931-023-02418-1
[32] 张荣瑞, 丁菁, 梁政伟, 等. 组蛋白H3K4me3促进NEAT1表达介导小鼠心肌缺血再灌注损伤中细胞铁死亡的作用[J]. 贵州医科大学学报, 2025, 50(8): 1120-1131, 1143. DOI:10.19367/j.cnki.2096-8388.2025.08.003 Zhang Rongrui, Ding Jing, Liang Zhengwei, et al. The role of histone H3K4me3 in promoting NEAT1 expression to mediate ferroptosis in myocardial ischemia-reperfusion injury in mice[J]. Journal of Guizhou Medical University, 2025, 50(8): 1120-1131, 1143. DOI:10.19367/j.cnki.2096-8388.2025.08.003
[33] Choi J, Lee H. MLL1 histone methyltransferase and UTX histone demethylase functionally cooperate to regulate the expression of NRF2 in response to ROS-induced oxidative stress[J]. Free Radic Biol Med, 2024, 217: 48-59. DOI:10.1016/j.freeradbiomed.2024.03.018
[34] Zhang P F, Cao L M, Zhou R B, et al. The lncRNA Neat1 promotes activation of inflammasomes in macrophages[J]. Nat Commun, 2019, 10(1): 1495. DOI:10.1038/s41467-019-09482-6
[35] Yang Q Y, Chen S L, Wang X Y, et al. Exercise mitigates endothelial pyroptosis and atherosclerosis by downregulating NEAT1 through N6-methyladenosine modifications[J]. Arterioscler Thromb Vasc Biol, 2023, 43(6): 910-926.
[36] Mamontova V, Trifault B, Gribling-Burrer A S, et al. NEAT1 promotes genome stability via m(6)a methylation-dependent regulation of CHD4[J]. Genes Dev, 2024, 38(17/18/19/20): 915-930.
[37] Dixon S J, Lemberg K M, Lamprecht M R, et al. Ferroptosis: an iron-dependent form of nonapoptotic cell death[J]. Cell, 2012, 149(5): 1060-1072.
[38] Li J, Cao F, Yin H L, et al. Ferroptosis: past, present and future[J]. Cell Death Dis, 2020, 11(2): 88. DOI:10.1038/s41419-020-2298-2
[39] 赵中豪, 宋林, 杨福情, 等. 钙/钙调蛋白通过铁过载介导心肌梗死中心肌细胞铁死亡[J]. 中国生物化学与分子生物学报, 2023, 39(7): 1023-1035. Zhao Zhonghao, Song Lin, Yang Fuqing, et al. Calcium/calmodulin mediates cardiomyocyte ferroptosis in myocardial infarction through iron overload[J]. Chinese Journal of Biochemistry and Molecular Biology, 2023, 39(7): 1023-1035.
[40] 尹宝, 谭向宇. LncRNA NEAT1通过miR-136/ERK1/2轴对改善心肌梗死大鼠心肌损伤的机制研究[J]. 中国免疫学杂志, 2025, 41(1): 75-84. Yin Bao, Tan Xiangyu. Study on mechanism of LncRNA NEAT1 on improving myocardial injury in rats with myocardial infarction through miR-136/ERK1/2 axis[J]. Chinese Journal of Immunology, 2025, 41(1): 75-84.
[41] 谢润珊, 李依静, 吴多志, 等. 长链非编码RNA对心肌缺血再灌注损伤的调控研究进展[J]. 中华实验外科杂志, 2024, 41(4): 885-890. Xie Runshan, Li Yijing, Wu Duozhi, et al. Regulation of long non-coding RNAs on myocardial ischemia/reperfusion injury[J]. Chinese Journal of Experimental Surgery, 2024, 41(4): 885-890.
[42] Rui P F, Wang J H, Xu J. Long non-coding NEAT1 weakens the protective role of sevoflurane on myocardial ischemia/reperfusion injury by mediating the microRNA-140/RhoA axis[J]. J Biol Regul Homeost Agents, 2021, 35(3): 933-944.
[43] Shimokawa H, Sunamura S, Satoh K. RhoA/rho-kinase in the cardiovascular system[J]. Circ Res, 2016, 118(2): 352-366.
[44] Bellezza I, Giambanco I, Minelli A, et al. Nrf2-Keap1 signaling in oxidative and reductive stress[J]. Biochim Biophys Acta Mol Cell Res, 2018, 1865(5): 721-733.
[45] Wu Q, Wan X C, Wang D X, et al. L-Theanine attenuates oxidative damage induced by heat stress through the PI3K/AKT/Nrf2 signaling pathway in skeletal muscle cells[J].Poult Sci, 2025, 104(6): 105140. DOI:10.1016/j.psj.2025.105140
[46] Shen S Y, Ma L, Shao F, et al. Long non-coding RNA(lncRNA)NEAT1 aggravates cerebral ischemia-reperfusion injury by suppressing the inhibitory effect of miR-214 on PTEN[J]. Med Sci Monit, 2020, 26: e924781. DOI:10.12659/MSM.924781
[47] Sun M Y, Xie Z C, Zhang J Q, et al. Mechanistic insight into sevoflurane-associated developmental neuroto-xicity[J]. Cell Biol Toxicol, 2022, 38(6): 927-943.
[48] Gu L Y, Wang X H, Wu Z H, et al. The inhibition of reactive oxygen species modulator 1 attenuates sevoflurane-induced neural injury via reducing apoptosis and oxidative stress[J]. J Mol Neurosci, 2024, 74(4): 97. DOI:10.1007/s12031-024-02277-5
[49] Wang Y L, Li N, Chen X Y, et al. Mechanistic insights into sevoflurane-induced hippocampal neuronal damage and cognitive dysfunction through the NEAT1/Nrf2 signaling axis in aged rats[J]. Cell Biol Toxicol, 2024, 41(1): 13. DOI:10.1007/s10565-024-09964-4
[50] Wei X, Xu S, Chen L. LncRNA Neat1/miR-298-5p/Srpk1 contributes to sevoflurane-induced neurotoxicity[J]. Neurochem Res, 2021, 46(12): 3356-3364.
[51] Zohar K, Giladi E, Eliyahu T, et al. Oxidative stress and its modulation by ladostigil alter the expression of abundant long non-coding RNAs in SH-SY5Y cells[J]. Noncoding RNA, 2022, 8(6): 72. DOI:10.3390/ncrna8060072
[52] Maazouzi M, Rasheed M, Mbarek L, et al. Exploring non-coding RNA regulation of the blood-brain barrier in neurodegenerative diseases: a systematic review[J]. J Neurochem, 2025, 169(3): e70031. DOI:10.1111/jnc.70031
[53] Yang L X, Luo M, Li S Y. Tanshinone IIA improves Alzheimer’s disease via RNA nuclear-enriched abundant transcript 1/microRNA-291a-3p/member RAS oncogene family Rab22a axis[J]. World J Psychiatry, 2024, 14(4): 563-581.
[54] Simchovitz A, Hanan M, Niederhoffer N, et al. NEAT1 is overexpressed in Parkinsons disease substantia nigra and confers drug-inducible neuroprotection from oxidative stress[J]. FASEB J, 2019, 33(10): 11223-11234.
[55] Zhou S F, Zhang D, Guo J N, et al. Deficiency of NEAT1 prevented MPP(+)-induced inflammatory response, oxidative stress and apoptosis in dopaminergic SK-N-SH neuroblastoma cells via miR-1277-5p/ARHGAP26 axis[J]. Brain Res, 2021, 1750: 147156. DOI:10.1016/j.brainres.2020.147156
[56] Liu R G, Li F L, Zhao W J. Long noncoding RNA NEAT1 knockdown inhibits MPP(+)-induced apoptosis, inflammation and cytotoxicity in SK-N-SH cells by regulating miR-212-5p/RAB3IP axis[J]. Neurosci Lett, 2020, 731: 135060. DOI:10.1016/j.neulet.2020.135060
[57] Xie S P, Zhou F, Li J, et al. NEAT1 regulates MPP(+)-induced neuronal injury by targeting miR-124 in neuroblastoma cells[J]. Neurosci Lett, 2019, 708: 134340. DOI:10.1016/j.neulet.2019.134340
[58] Chen M Y, Fan K, Zhao L J, et al. Long non-coding RNA nuclear enriched abundant transcript 1(NEAT1)sponges microRNA-124-3p to up-regulate phosphodiesterase 4B(PDE4B)to accelerate the progression of Parkinsons disease[J]. Bioengineered, 2021, 12(1): 708-719.
[59] Zhang R, Chen L N, Huang F, et al. Long non-coding RNA NEAT1 promotes lipopolysaccharide-induced acute lung injury by regulating miR-424-5p/MAPK14 axis[J]. Genes Genomics, 2021, 43(7): 815-827.
[60] Ge S H, Hu J X, Gao S J, et al. LncRNA NEAT1: a novel regulator associated with the inflammatory response in acute respiratory distress syndrome[J]. Gene, 2023, 878: 147582. DOI:10.1016/j.gene.2023.147582
[61] Liu Y, Tang G, Li J Y. Long non-coding RNA NEAT1 participates in ventilator-induced lung injury by regulating miR-20b expression[J]. Mol Med Rep, 2022, 25(2):66. DOI:10.3892/mmr.2022.12582
[62] Dai Y M, Cui C G, Jiao D, et al. JAK/STAT signaling as a key regulator of ferroptosis: mechanisms and therapeutic potentials in cancer and diseases[J]. Cancer Cell Int, 2025, 25(1): 83. DOI:10.1186/s12935-025-03681-6
[63] Arena A, Romeo M A, Benedetti R, et al. NRF2 and STAT3: friends or foes in carcinogenesis?[J]. Discov Oncol, 2023, 14(1): 37. DOI:10.1007/s12672-023-00644-z
[64] Bao J Q, Wang Z X, Yang Y T, et al. Interleukin-17 alleviates erastin-induced alveolar bone loss by suppressing ferroptosis via interaction between NRF2 and p-STAT3[J]. J Clin Periodontol, 2024, 51(2): 233-250.
[65] Yang J, Wu L, Liu S S, et al. Long non-coding RNA NEAT1 promotes lipopolysaccharide-induced injury in human tubule epithelial cells by regulating miR-93-5p/TXNIP axis[J]. Med Microbiol Immunol, 2021, 210(2/3): 121-132.
[66] Yan Q S, Hu Q Q, Li G X, et al. NEAT1 regulates calcium oxalate crystal-induced renal tubular oxidative injury via miR-130/IRF1[J]. Antioxid Redox Signal, 2023, 38(10/11/12): 731-746.
[67] Abd-Elmawla M A, Elsamanoudie N M, Ismail M F, et al. The interplay of TapSAKI and NEAT-1 as potential modulators in gentamicin-induced acute kidney injury via orchestrating miR-22-3p/TLR4/MyD88/NF-κB/IL-1 β milieu: novel therapeutic approach of Betanin[J]. Int Immunopharmacol, 2024, 143(3): 113577. DOI:10.1016/j.intimp.2024.113577
[68] 徐琳, 姚东升, 周奕菁, 等. LncRNA NEAT1/miR-129-5p 轴通过调控Wnt/β-catenin 通路活化参与LPS 诱导的肾小管上皮细胞损伤[J]. 中华细胞与干细胞杂志(电子版), 2025, 15(1): 41-50. Xu Lin, Yao Dongsheng, Zhou Yijing, et al. LncRNA NEAT1/miR-129-5p axis was involved in LPS-induced renal tubular epithelial cell injury through regulating Wnt/β-catenin pathway activation[J]. Chinese journal of cell and stem cell(Electronic Edition), 2025, 15(1): 41-50.
[69] Arroyave-Ospina J C, Wu Z M, Geng Y N, et al. Role of oxidative stress in the pathogenesis of non-alcoholic fatty liver disease: implications for prevention and therapy[J]. Antioxidants, 2021, 10(2): 174. DOI:10.3390/antiox10020174
[70] Saleh R O, Alkhafaji A T, Mohammed J S, et al. LncRNA NEAT1 in the pathogenesis of liver-related diseases[J]. Cell Biochem Funct, 2024, 42(3): e4006. DOI:10.1002/cbf.4006
[71] Jin S S, Lin C J, Lin X F, et al. Silencing lncRNA NEAT1 reduces nonalcoholic fatty liver fat deposition by regulating the miR-139-5p/c-Jun/SREBP-1c pathway[J]. Ann Hepatol, 2022, 27(2): 100584. DOI:10.1016/j.aohep.2021.100584
[72] Abedpoor N, Taghian F, Jalali Dehkordi K, et al. Spa-rassis latifolia and exercise training as complementary medicine mitigated the 5-fluorouracil potent side effects in mice with colorectal cancer: bioinformatics approaches, novel monitoring pathological metrics, screening signatures, and innovative management tactic[J]. Cancer Cell Int, 2024, 24(1): 141. DOI:10.1186/s12935-024-03328-y
[73] Zhang Y, Luo M Y, Cui X H, et al. Long noncoding RNA NEAT1 promotes ferroptosis by modulating the miR-362-3p/MIOX axis as a CeRNA[J]. Cell Death Differ, 2022, 29(9): 1850-1863.
[74] Tatone C, Di Emidio G, Battaglia R, et al. Building a human ovarian antioxidant CeRNA Network “OvAnOx”: a bioinformatic perspective for research on redox-related ovarian functions and dysfunctions[J]. Antioxidants, 2024, 13(9):1101. DOI:10.3390/antiox13091101
[75] Wu L, Tu Z J, Bao Y, et al. Long noncoding RNA NEAT1 decreases polycystic ovary syndrome progression via the modulation of the microRNA-324-3p and BRD3 axis[J]. Cell Biol Int, 2022, 46(12): 2075-2084.
[76] ElMonier A A, El-Boghdady N A, Fahim S A, et al. LncRNA NEAT1 and MALAT1 are involved in polycystic ovary syndrome pathogenesis by functioning as competing endogenous RNAs to control the expression of PCOS-related target genes[J]. Noncoding RNA Res, 2023, 8(2): 263-271.
[77] Huang J Y, Huang B Y, Kong Y X, et al. Polycystic ovary syndrome: identification of novel and hub biomarkers in the autophagy-associated mRNA-miRNA-lncRNA network[J]. Front Endocrinol, 2022, 13: 1032064. DOI:10.3389/fendo.2022.1032064
[78] Kasimanickam R, Kasimanickam V, Ferreira J, et al. Regulatory RNA networks in ovarian follicular cysts in dairy cows: implications for human polycystic ovary syndrome[J]. Genes, 2025, 16(7): 791. DOI:10.3390/genes16070791
[79] Senousy M A, Shaker O G, Elmaasrawy A H Z, et al. Serum lncRNAs TUG1, H19, and NEAT1 and their target miR-29b/SLC3A1 axis as possible biomarkers of preeclampsia: Potential clinical insights[J]. Noncoding RNA Res, 2024, 9(4): 995-1008.
[80] Ma Y H, Deng W J, Luo Z Y, et al. Inhibition of microRNA-29b suppresses oxidative stress and reduces apoptosis in ischemic stroke[J]. Neural Regen Res, 2022, 17(2): 433-439.
[81] 卢毅, 陈凡, 叶慧玲, 等. LncRNA NEAT1调节miR-204-5p/TET1对高糖条件下晶状体上皮细胞损伤的影响[J]. 眼科新进展, 2025, 45(9): 703-710. DOI:10.13389/j.cnki.rao.2025.0121 Lu Yi, Chen Fan, Ye Huiling, et al. The impact of LncRNA NEAT1 on lens epithelial cell injury under high-glucose conditions by modulating the miR-204-5p/TET1 axis[J]. Recent Advances in Ophthalmology, 2025, 45(9): 703-710.
[82] 唐志铭, 荆梦晴, 陆鹭, 等. 犀地凉血方通过LncRNA NEAT1/miR-485-5p/STAT3调控网络对HaCaT细胞增殖、凋亡影响的研究[J]. 中华皮肤科杂志, 2023, 56(7): 642-650. Tang Zhiming, Jing Mengqing, Lu Lu, et al. Effect of Xidi Liangxue recipe on the proliferation and apoptosis of HaCaT cells through the lncRNA NEAT1/miR-485-5p/STAT3 regulatory network[J]. Chinese Journal of Dermatology, 2023, 56(7): 642-650.
[83] Zhang M, Lu N, Li H J, et al. Inhibition of lncRNA NEAT1 induces dysfunction of fibroblast-like synoviocytes in rheumatoid arthritis via miRNA-338-3p-mediated regulation of glutamine metabolism[J]. J Orthop Surg Res, 2022, 17(1): 401. DOI:10.1186/s13018-022-03295-y
[84] Zhang H G, Xu R Y, Li B, et al. LncRNA NEAT1 controls the lineage fates of BMSCs during skeletal aging by impairing mitochondrial function and pluripotency maintenance[J]. Cell Death Differ, 2022, 29(2): 351-365.
[85] Liu Y C, Liu S Y, Lin Y C, et al. The disruption of NEAT1-miR-125b-5p-SLC1A5 cascade defines the oncogenicity and differential immune profile in head and neck squamous cell carcinoma[J]. Cell Death Discov, 2024, 10(1): 392. DOI:10.1038/s41420-024-02158-1
[86] Zhou Z W, Ren X, Zhou W S, et al. LncRNA NEAT1 alleviates ischemic stroke via transcriptional inhibition of NLRP3 mediated by the miR-10b-5p/BCL6 axis[J]. Acta Neurobiol Exp, 2022, 82(1): 12-21.
[87] Chen H B, Xia W Z, Hou M. LncRNA-NEAT1 from the competing endogenous RNA network promotes cardioprotective efficacy of mesenchymal stem cell-derived exosomes induced by macrophage migration inhibitory factor via the miR-142-3p/FOXO1 signaling pathway[J]. Stem Cell Res Ther, 2020, 11(1): 31. DOI:10.1186/s13287-020-1556-7
[88] Ahmed A I, Dowidar M F, Negm A F, et al. Bone marrow mesenchymal stem cells expressing Neat-1, Hotair-1, miR-21, miR-644, and miR-144 subsided cyclophosphamide-induced ovarian insufficiency by remodeling the IGF-1-kisspeptin system, ovarian apoptosis, and angiogenesis[J]. J Ovarian Res, 2024, 17(1): 184. DOI:10.1186/s13048-024-01498-x
[89] Liu Y X, Ke Y, Qiu P, et al. LncRNA NEAT1 inhibits apoptosis and autophagy of ovarian granulosa cells through miR-654/STC2-mediated MAPK signaling pathway[J]. Exp Cell Res, 2023, 424(1): 113473. DOI:10.1016/j.yexcr.2023.113473
[90] Jiang S, Li H Q, Zhang L, et al. Generic Diagramming Platform(GDP): a comprehensive database of high-quality biomedical graphics[J]. Nucleic Acids Res, 2025, 53(D1): 1670-1676.
[91] Li P, Duan S Y, Fu A D. Long noncoding RNA NEAT1 correlates with higher disease risk, worse disease condition, decreased miR-124 and miR-125a and predicts poor recurrence-free survival of acute ischemic stroke[J]. J Clin Lab Anal, 2020, 34(2): e23056. DOI:10.1002/jcla.23056
[92] Dong L, Wu H C, Qi F H, et al. LncRNA NEAT1 participates in diminished ovarian reserve by affecting granulosa cell apoptosis and estradiol synthesis via the miR-204-5p/ESR1 axis[J]. J Ovarian Res, 2025, 18(1): 102. DOI:10.1186/s13048-025-01683-6
[93] Chen W, Dong L, Liang Q H, et al. NEAT1 inhibits granulosa cell apoptosis and promotes cell growth and migration through the miR-130a-3p/BMP6 axis[J]. Reprod BioMedicine Online, 2025, 51(6): 104870. DOI:10.1016/j.rbmo.2025.104870
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